Permeability and selectivity synergistically enhanced nanofluidic membrane for osmotic energy harvesting

Author:

Zhong Jundong1,Xu Tingting1,Qi Hongyan1,Sun Weibo1,Zhao Shuang1,Zhao Zhe1,Sun Yirong1,Zhu Youliang2,Mu Jianxin1,Zhang Haibo1,Zhu Xuanbo13ORCID,Jiang Zhenhua1,Jiang Lei4

Affiliation:

1. National and Local Joint Engineering Laboratory for Synthetic Technology of High‐Performance Polymer Jilin University Changchun Jilin China

2. State Key Laboratory of Supramolecular Structure and Materials Jilin University Changchun Jilin China

3. Key Laboratory for Molecular Enzymology and Engineering of Ministry of Education Jilin University Changchun Jilin China

4. CAS Key Laboratory of Bio‐inspired Materials and Interfacial Science Technical Institute of Physics and Chemistry, Chinese Academy of Sciences Beijing China

Abstract

AbstractFor the porous‐membrane‐based osmotic energy generator, the potential synergistic enhancement mechanism of various key parameters is still controversial, especially because optimizing the trade‐off between permeability and selectivity is still a challenge. Here, to construct a permeability and selectivity synergistically enhanced osmotic energy generator, the two‐dimensional porous membranes with tunable charge density are prepared by inserting sulfonated polyether sulfone into graphene oxide. Influences of charge density and pore size on the ion transport are explored, and the ionic behaviors in the channel are calculated by numerical simulations. The mechanism of ion transport in the process is studied in depth, and the fundamental principles of energy conversion are revealed. The results demonstrate that charge density and pore size should be matched to construct the optimal ion channel. This collaborative enhancement strategy of permeability and selectivity has significantly improved the output power in osmotic energy generation; compared to the pure graphene oxide membrane, the composite membrane presents almost 20 times improvement.

Funder

Natural Science Foundation of Jilin Province

National Natural Science Foundation of China

Publisher

Wiley

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